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Manipulating the interfacial structure of nanomaterials to achieve a unique combination of strength and ductility

机译:操纵纳米材料的界面结构以实现强度和延展性的独特结合

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摘要

The control of interfaces in engineered nanostructured materials has met limited success compared with that which has evolved in natural materials, where hierarchical structures with distinct interfacial states are often found. Such interface control could mitigate common limitations of engineering nanomaterials. For example, nanostructured metals exhibit extremely high strength, but this benefit comes at the expense of other important properties like ductility. Here, we report a technique for combining nanostructuring with recent advances capable of tuning interface structure, a complementary materials design strategy that allows for unprecedented property combinations. Copper-based alloys with both grain sizes in the nanometre range and distinct grain boundary structural features are created, using segregating dopants and a processing route that favours the formation of amorphous intergranular films. The mechanical behaviour of these alloys shows that the trade-off between strength and ductility typically observed for metallic materials is successfully avoided here.
机译:与天然材料相比,工程纳米结构材料中界面的控制取得了有限的成功,而天然材料中经常发现具有明显界面状态的分层结构。这种界面控制可以减轻工程纳米材料的共同局限性。例如,纳米结构金属表现出极高的强度,但这种好处是以其他重要性能(如延展性)为代价的。在这里,我们报告了一种将纳米结构与能够调整界面结构的最新进展相结合的技术,这种互补的材料设计策略可实现前所未有的性能组合。使用偏析掺杂剂和有利于形成无定形晶间膜的工艺路线,创建了纳米级晶粒尺寸和明显的晶界结构特征的铜基合金。这些合金的机械性能表明,这里成功避免了通常在金属材料上观察到的强度和延展性之间的权衡。

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